Image Change Detection Based on the Minimum Mean Square Error

The detection of change is one of the most important tasks in remote sensing analysis. In this paper, a novel unsupervised change detection approach by minimizing the mean square error (MSE) is proposed. The difference image computed by the absolute-valued log ratio of the intensity values of two in...

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Published in2012 Fifth International Joint Conference on Computational Sciences and Optimization pp. 367 - 371
Main Authors Pu, Yunchen, Wang, Wei, Xu, Qiongcheng
Format Conference Proceeding
LanguageEnglish
Published IEEE 01.06.2012
Subjects
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ISBN9781467313650
1467313653
DOI10.1109/CSO.2012.88

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Abstract The detection of change is one of the most important tasks in remote sensing analysis. In this paper, a novel unsupervised change detection approach by minimizing the mean square error (MSE) is proposed. The difference image computed by the absolute-valued log ratio of the intensity values of two input images is partitioned into two distinct regions according to the change mask. For each region, the mean square error between its difference image values and the average of its difference image values is calculated. In single-band images, the accurate solution of the change mask with minimum MSE can be obtained in an acceptable time. In multi spectral images, it is considered as a multi-objective optimizations problem. GA is used to obtain the optimal compromised solution. The change detection result of the Florida citrus aerial imagery data is provided. Change error matrix and Kappa coefficient are used to assess the effectiveness of the change detection techniques.
AbstractList The detection of change is one of the most important tasks in remote sensing analysis. In this paper, a novel unsupervised change detection approach by minimizing the mean square error (MSE) is proposed. The difference image computed by the absolute-valued log ratio of the intensity values of two input images is partitioned into two distinct regions according to the change mask. For each region, the mean square error between its difference image values and the average of its difference image values is calculated. In single-band images, the accurate solution of the change mask with minimum MSE can be obtained in an acceptable time. In multi spectral images, it is considered as a multi-objective optimizations problem. GA is used to obtain the optimal compromised solution. The change detection result of the Florida citrus aerial imagery data is provided. Change error matrix and Kappa coefficient are used to assess the effectiveness of the change detection techniques.
Author Wang, Wei
Pu, Yunchen
Xu, Qiongcheng
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  organization: Dept. of Autom., Shanghai Jiaotong Univ., Shanghai, China
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Snippet The detection of change is one of the most important tasks in remote sensing analysis. In this paper, a novel unsupervised change detection approach by...
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StartPage 367
SubjectTerms change detection
Change detection algorithms
change mask
differece image
Error analysis
Genetic algorithms
mean square error
Mean square error methods
Optimization
Remote sensing
Satellites
Title Image Change Detection Based on the Minimum Mean Square Error
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